This protocol enables the generation of self-organizing cardiomyocyte-based cardioids from human induced pluripotent stem cells for microscopic assessment of fluorescently labeled oligonucleotide uptake.
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Method Article
* These authors contributed equally
This protocol enables the generation of self-organizing cardiomyocyte-based cardioids from human induced pluripotent stem cells for microscopic assessment of fluorescently labeled oligonucleotide uptake.
Oligonucleotide-based therapeutics represent a rapidly advancing class of drugs with significant potential for treating cardiovascular diseases; however, achieving efficient delivery to cardiac tissue remains a critical and unresolved challenge. A key obstacle is the limited availability of robust, physiologically relevant human in vitro models capable of supporting quantitative assessment of oligonucleotide cellular uptake and intracellular distribution. A detailed, step-by-step protocol is presented for generating self-organizing, 3D cardioids from human induced pluripotent stem cells (iPSCs) and applying them as a platform to evaluate the uptake of fluorescently labeled oligonucleotides. The protocol guides users through directed cardiac differentiation in suspension culture by temporally modulating Wnt/β-catenin signaling, enabling sequential specification of iPSCs through the mesoderm, cardiac mesoderm, and cardiomyocyte progenitor stages. Under these conditions, cells spontaneously self-assemble into beating, cavity-containing three-dimensional structures that express canonical cardiomyocyte markers. The resulting cardioids provide a scalable, experimentally tractable platform for imaging-based assessment of oligonucleotide uptake efficiency, supporting the development and optimization of delivery strategies for cardiac applications.
Oligonucleotide-based therapeutics, primarily antisense oligonucleotides (ASOs) and small interfering RNAs (siRNAs), are rapidly emerging as a transformative and highly specific approach for the treatment of a broad range of diseases, including both hereditary and acquired conditions1,2,3. These modalities enable direct modulation of gene expression at the mRNA level through sequence-specific binding to target transcripts, allowing gene silencing or splicing correction of disease-associated genes that are often inaccessible to conventional small-molecule therapies
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1. Culture and preparation of iPSCs for differentiation
CAUTION: Perform all open handling of cells and media in a certified Class II biosafety cabinet. Wear a lab coat and gloves. Decontaminate work surfaces and liquid waste with an appropriate disinfectant.
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Figure 1 summarizes the differentiation workflow and illustrates the characteristic morphological changes expected at each stage of the protocol, from iPSC aggregation to the formation of self-organizing cardioids. Suspension-based microwell aggregation provides a simple and standardized approach for the parallel generation of large numbers of size-controlled cardioids. Successful differentiation is characterized by the generation of uniformly sized aggregates, followed by the development of.......
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Oligonucleotide-based therapeutics have emerged as a powerful class of gene-targeting modalities, supported by decades of advances in oligonucleotide chemistry that have improved target specificity, metabolic stability, and immunogenic tolerability7,8. Despite the increasing number of clinically approved RNA therapeutics, their broader application remains limited by inefficient intracellular delivery7,8. .......
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The authors declare no competing interests.
We thank members of the Novo Nordisk Foundation Challenge Center for Optimized Oligo Escape, particularly Knud Jensen for oligonucleotide design and synthesis, and Nikos S. Hatzakis and Tomas Kirchhausen for valuable guidance on quantitative imaging and intracellular trafficking analysis. This work was funded by the Novo Nordisk Foundation Challenge Center for Optimized Oligo Escape (NNF23OC0081287). M.F. received a fellowship from Fundação para a Ciência e a Tecnologia (FCT), Portugal (2020.04836.BD). We thank the GIMM Bioimaging and the GIMM Histopathology Platforms (Lisboa, Portugal) for technical assistance.
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| Name | Company | Catalog Number | Comments |
|---|---|---|---|
| 4', 6-diamidino-2'-phenylindole, dihydrochloride | Thermo Scientific | 62248 | DAPI |
| 10× dry objective | Zeiss | EC Plan-Neofluar 10×/0.30 | |
| 40× water objective | Zeiss | LD C-Apochromat 40×/1.10 Corr | |
| 63× oil-immersion objective | Zeiss | Plan-Apochromat 63×/1.40 Oil DIC M27 | |
| 800-µm microwell aggregation plate | STEMCELL Technologies | 34815 | AggreWell 800 |
| Andor Neo 5.5 sCMOS camera | Andor | Andor Neo 5.5 | |
| Antifade mounting medium | Vector Laboratories | H-1000-10 | VECTASHIELD Antifade Mounting Medium |
| B27 supplement minus insulin, 50× | Gibco | A18956-01 | B27 Minus Insulin 50× |
| B27 supplement with insulin, 50× | Gibco | 17504-044 | B27 Supplement 50× |
| Basal Medium | Gibco | 21875-034 | RPMI 1640 |
| Basement-membrane matrix | Gibco / Corning | A14132-02 / 354230 | Geltrex LDEV-Free / Matrigel LDEV-Free |
| brightfield microscope | EVOS | EVOS XL Core Imaging Microscope | |
| Cell detachment solution | STEMCELL Technologies | 07922 | ACCUTASE |
| confocal microscope | ZEISS | ZEISS LSM 980 with Airyscan 2 Microscope | |
| Defined feeder-free iPSC maintenance medium | STEMCELL Technologies | 100-0276 | mTeSR Plus |
| DMEM/F12 | Gibco | 31331-028 | DMEM/F12 |
| Non-treated 6-well plate | Avantor (VWR) | 734-2777 | Untreated 6-well Plate |
| Phalloidin | Thermo Scientific | A22287 | Phalloidin Labeling Probes ALexa 647 |
| Phosphate-buffered saline (1× PBS) | Gibco | 14190-144 | DPBS 1× |
| primary antibody c-MYBPC3 | Santa Cruz | sc-137181 | MYBPC3 Antibody (F-1) |
| ROCK inhibitor | STEMCELL Technologies | 72304 | ROCK Inhibitor (Y-27632) |
| Secondary antibody (green) | Thermo Scientific | A-11017 | F(ab')2-Goat anti-Mouse IgG (H+L) Cross-Adsorbed Secondary Antibody, Alexa Fluor 488 |
| Washing medium supplement | Gibco | 10828028 | KnockOut Serum Replacement |
| WGA, Alexa Fluor™ 488 conjugate | Invitrogen | W11261 | WGA |
| widefield microscope | Nikon | Nikon Eclipse Ti | |
| WNT pathway inhibitor | STEMCELL Technologies | 72552 | IWP4 |
| Wnt/β-catenin pathway activator | Sigma | SML1046 | CHIR99021 |
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